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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Repulsive Soft-Core Potentials for Efficient Alchemical Free Energy Calculations
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Repulsive Soft-Core Potentials for Efficient Alchemical Free Energy Calculations

机译:用于高效的炼金术自由能量计算的令人厌恶的软核电位

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摘要

In alchemical free energy (FE) simulations, annihilation and creation of atoms are generally achieved with the soft-core potential that shifts the interparticle separations. While this soft-core potential eliminates the numerical instability occurring near the two end states of the transformation, it makes the hybrid Hamiltonian vary nonlinearly with respect to the parameter lambda, which interpolates between the Hamiltonians representing the two end states. This complicates FE estimation by Bennett acceptance ratio (BAR), free energy perturbation (FEP), and thermodynamic integration (TI) methods, thus reducing their calculation efficiency. In this work, we develop a new type of repulsive soft-core potential, called Gaussian soft-core (GSC) potential, with two parameters controlling its maximum and width. The main advantage of this potential is the linearity of the hybrid Hamiltonian with respect to lambda, thus permitting the direct application of BAR, FEP, TI, and other variant FE methods. The accuracy and efficiency of the GSC potential are demonstrated by comparing the free energies of annihilation determined for 13 small molecules and an alchemical mutation of a protein side chain. In addition, in combination with a TI integrand (partial derivative H/partial derivative lambda) estimation strategy, we show that GSC can considerably reduce the number of lambda simulations compared to the commonly used separation-shifted soft-core potential.
机译:在炼金术自由能(Fe)模拟中,通常通过使颗粒分离的软核电位实现湮灭和产生原子。虽然这种软核心电位消除了在转换的两个结束状态附近发生的数值不稳定性,但它使混合动力汉密尔顿人民与参数Lambda之间的非线性变化,这在代表两个结束状态之间插值。这使得Bennett接受比(BAR),自由能量扰动(FEP)和热力学积分(TI)方法复杂化FE估计,从而降低了它们的计算效率。在这项工作中,我们开发了一种新型的令人厌恶的软核心电位,称为高斯软核(GSC)电位,两个参数控制其最大值和宽度。这种潜力的主要优点是混合汉密尔顿人对λ的线性,从而允许直接应用棒,FEP,Ti和其他变体Fe方法。通过比较13个小分子测定的湮灭的自由能和蛋白质侧链的炼金术突变来证明GSC电位的准确性和效率。另外,与Ti积分(部分衍生H /部分导数Lambda)估计策略组合,我们表明GSC可以相比,与常用的分离偏移的软核电位相比,GSC可以大大减少Lambda模拟的数量。

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